4

For example, given:

['A', 'B', 'A', 'B']    

I want to have:

{'A': [0, 2], 'B': [1, 3]}

I tried a loop that goes like; add the index of where the character is found, then replace it with '' so the next time the loop goes through, it passes on to the next character.

However, that loops doesn't work for other reasons, and I'm stuck with no idea how to proceed.

3

A simple dictionary comprehension should do the trick:

{key: [index for index, x in enumerate(my_list) if x == key] for key in my_list}

A simple trial:

>>>> my_list = ['A','B','A','B']
>>>> {key: [index for index, x in enumerate(my_list) if x == key] for key in my_list}
>>>> {'A': [0, 2], 'B': [1, 3]}

How It Works

List comprehensions are often used in Python as syntactic sugar for a for loop. Instead of writing

my_list = []
for item in range(10):
    my_list.append(item)

list comprehensions essentially let you condense this series of statements into a single line:

my_list = [item for item in range(10)]

Whenever you see a list comprehension, you should remember that it's just a condensed version of the original three line statement. They are effectively identical - the only benefit offered here is conciseness.

A similar, related species is the dictionary comprehension. It is similar to the list comprehension, except that it allows you to specify both the keys and values at the same time.

An example of a dictionary comprehension:

{k: None for k in ["Hello", "Adele"]}
>>>> {"Hello": None, "Adele": None}

In the answer I provide, I have simply used a dictionary comprehension that

  • Pulls out keys from my_list
  • Assigns a list of indices for each key from my_list as the corresponding value

Syntactically, it expands out into a fairly complicated program that reads like this:

my_dict = {}
for key in my_list:
    indices = []
    for index,value in enumerate(my_list):
         if value == key:
              indices.append(index)
    my_dict[key] = indices

Here, enumerate is a standard library function that returns a list of tuples. The first element of each tuple refers to an index of the list, and the second element refers to the value at that index in the list.

Observe:

 enumerate(['a','b','a','b'])
 >>>> [(0,'a'),(1,'b'),(2,'b'),(3,'b')]

That is the power of enumerate.

Efficiency

As always, premature optimisation is the root of all evil. It is indeed true that this implementation is inefficient: it duplicates work, and runs in quadratic time. The important thing, however, is to ask if it is okay for the specific task you have. For relatively small lists, this is sufficient.

You can look at certain optimisations. @wilinx's way works well. @Rob in the comments suggests iterating over set(my_list), which prevents duplicated work.

  • That comprehension duplicates work. Maybe ... for key in set(my_list) ? – Robᵩ Apr 4 '16 at 5:33
  • Agreed. That would be a good change. – Akshat Mahajan Apr 4 '16 at 5:34
  • This is new to me, could you walk me through how it works? – L to the V Apr 4 '16 at 5:34
  • @LtotheV: Sure! Let me just update the post. – Akshat Mahajan Apr 4 '16 at 5:35
  • 1
    ​​​​​​​​​​​​​​​Hmm...note that since this way will loop over the list again and again, I think it would be slower than willnx's way. – Kevin Guan Apr 4 '16 at 5:39
9

Use enumerate and setdefault:

example = ['a', 'b', 'a', 'b']
mydict = {}
for idx, item in enumerate(example):
     indexes = mydict.setdefault(item, [])
     indexes.append(idx)
  • 4
    ​​​​​​​​​​​​​​​You can also from collections import defaultdict and use mydict = defaultdict(list), then you don't need run mydict.setdefault(item, []) yourself and I think it would be more Pythonic. – Kevin Guan Apr 4 '16 at 5:41
  • But then you have to import it :P Good point - if you want to submit an edit with an example of using that or setdefault, I'll accept it. – willnx Apr 4 '16 at 5:42
  • ​​​​​​​​​​​​​​​Well, that's not the correct usage of edit anyway. So I will not submit an edit. But anyway, here's the documentation of collections.defaultdict. – Kevin Guan Apr 4 '16 at 5:49
3

Why not use defaultdict from itertools instead:

>>> from collections import defaultdict
>>> d = defaultdict(list)
>>> 
>>> for i,x in enumerate(l):
        d[x].append(i)


>>> d
defaultdict(<class 'list'>, {'A': [0, 2], 'B': [1, 3]})
  • 1
    Wait a minute... isn't defaultdict in collections? – Elias Zamaria Apr 7 '16 at 21:05
  • Yea...correct...thanks...:D – Iron Fist Apr 8 '16 at 6:14
  • Did the OP mention not importing anything? defaultdict is a pretty common thing to import from the stdlib – Dan Gayle Apr 11 '16 at 15:11
-1

All you need is to do is use right DataType for you. Check this link - python doc. Good Luck. Hope this helps.

Source: https://docs.python.org/2/library/collections.html#collections.OrderedDict

>>> # regular unsorted dictionary
>>> d = {'banana': 3, 'apple':4, 'pear': 1, 'orange': 2}

>>> # dictionary sorted by key
>>> OrderedDict(sorted(d.items(), key=lambda t: t[0]))
OrderedDict([('apple', 4), ('banana', 3), ('orange', 2), ('pear', 1)])
  • That's not even the same problem. He's trying to store in a dict the indexes of a value within a list, not sort key:value pairs based on the value – Dan Gayle Apr 11 '16 at 15:13
  • @DanGayle my bad ! Either I did not read properly or further explanation were added later,. Thanks for pointing out :) – Sampath Apr 14 '16 at 6:31

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